The evolution of additional (hidden) quantum variables in the interference of Bose-Einstein condensates
arXiv:cond-mat/0605038 · doi:10.1103/PhysRevA.74.023610
Abstract
Additional variables (also often called ``hidden variables'') are sometimes added to standard quantum mechanics in order to remove its indeterminism or ``incompletness,'' and to make the measurement process look more classical. Here we discuss a case in which an additional variable arises almost spontaneously from the quantum formalism: the emergence of relative phase between two highly populated Fock state Bose-Einstein condensates. The model simulated here involves the interference of two Bose condensates, one with all up spins, and the other with down spins, along a z-axis. With the clouds overlapping, we consider the results of measuring spins in a transverse plane (the general direction is studied in an appendix). The determination of the previously ``hidden'' phase becomes progressively more definite as additional measurements are made. We also provide an analysis of a recent and closely related experiment.
27 pages, 7 figures
References in corpus (1)
Cited by in corpus (7)
- Interferometry with independent Bose-Einstein ondensates: parity as an EPR/Bell quantum variable
- Quantum non-local effects with Bose-Einstein condensates
- Nonlinear Phenomenology from Quantum Mechanics: Soliton in a Lattice
- Condensate depletion in two-species Bose gases: A variational Quantum Monte Carlo study
- EPR argument and Bell inequalities for Bose-Einstein spin condensates
- Nonlocal appearance of a macroscopic angular momentum
- Angular momentum conservation in measurements on spin Bose-Einstein condensates